Using Distance Measure to Perform Optimal Mapping with the K-Medoids Method on Medicinal Plants, Aromatics, and Spices Export

Dessy Adriani, Ratna Dewi, Leni Saleh, D. Yadi Heryadi, Fatma Sarie, I Gede Iwan Sudipa, Robbi Rahim
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Abstract

About 80% of the world's medicinal plants grow in Indonesia. The Negeri Rempah Foundation also said that Indonesia has more kinds of spices than any other country in Southeast Asia. To figure out the best way to export plants, you need to do a study that groups them by their main destination country. This is called "clustering," and it can be done by doing regional mapping. In the clustering process, measuring deviation/distance or distance space is a key part of figuring out how similar or regular data and items are. K-Medoids is one way to group things together. K-Medoids is an algorithm that groups data based on how far apart they are. Distance Measure is a way to measure the distance between two points. It can help an algorithm sort object into groups based on how similar their variables are. The dataset used comes from the Customs Documents of the Directorate General of Customs and Excise on the official website of the Central Bureau of Statistics for the period of 2012-2021 about the Export of Medicinal, Aromatic, and Spices Plants. This study uses mixed measures (mixed euclideandistance), numerical measures (camberradistance), and bregmandivergences (generalizeddivergence). The mapping results are compared with the validation of the Davies Bouldin Index (DBI). With the help of the rapidminer software, a number of tests were done. The results showed that using mixed measures (mixed euclideandistance) with a value of k=4 gave a DBI value of 0.021. Because it gives a DBI value close to 0, the K-Medoids algorithm with mixed measures (mixedeuclideandistance) is thought to work better than other distance measures.
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用距离度量对药用植物、香料和香料出口进行k - mediids方法的最优映射
世界上大约80%的药用植物生长在印度尼西亚。Negeri Rempah基金会还表示,印度尼西亚的香料种类比东南亚其他任何国家都多。为了找出出口植物的最佳方式,你需要做一项研究,根据它们的主要目的地国家对它们进行分组。这被称为“聚类”,它可以通过进行区域映射来完成。在聚类过程中,测量偏差/距离或距离空间是确定数据和项目相似或规则程度的关键部分。K-Medoids是将事物组合在一起的一种方法。k - mediids是一种算法,它根据数据之间的距离对数据进行分组。距离测量是测量两点之间距离的一种方法。它可以帮助算法根据变量的相似程度对对象进行分组。使用的数据集来自中央统计局官方网站2012-2021年期间关于药用,芳香和香料植物出口的海关总署海关文件。本研究使用混合度量(混合欧几里得距离)、数值度量(坎伯拉距离)和布雷格曼散度(广义散度)。将映射结果与Davies Bouldin指数(DBI)的验证结果进行了比较。在rapidminer软件的帮助下,进行了大量的测试。结果表明,采用k=4的混合度量(混合欧几里得距离),DBI值为0.021。因为它给出的DBI值接近于0,所以使用混合度量(mixedeuclideandistance)的K-Medoids算法被认为比其他距离度量更好。
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期刊介绍: JoWUA is an online peer-reviewed journal and aims to provide an international forum for researchers, professionals, and industrial practitioners on all topics related to wireless mobile networks, ubiquitous computing, and their dependable applications. JoWUA consists of high-quality technical manuscripts on advances in the state-of-the-art of wireless mobile networks, ubiquitous computing, and their dependable applications; both theoretical approaches and practical approaches are encouraged to submit. All published articles in JoWUA are freely accessible in this website because it is an open access journal. JoWUA has four issues (March, June, September, December) per year with special issues covering specific research areas by guest editors.
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